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Volterra Series Truncation and Kernel Estimation of Nonlinear Systems in the Frequency Domain

机译:Volterra级数截断与频域非线性系统的核估计

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摘要

The Volterra series model is a direct generalisation of the linear convolution integral and is capable of displaying the intrinsic features of a nonlinear system in a simple and easy to apply way. Nonlinear system analysis using Volterra series is normally based on the analysis of its frequency-domain kernels and a truncated description. But the estimation of Volterra kernels and the truncation of Volterra series are coupled with each other. In this paper, a novel complex-valued orthogonal least squares algorithm is developed. The new algorithm provides a powerful tool to determine which terms should be included in the Volterra series expansion and to estimate the kernels and thus solves the two problems all together. The estimated results are compared with those determined using the analytical expressions of the kernels to validate the method. To further evaluate the effectiveness of the method, the physical parameters of the system are also extracted from the measured kernels. Simulation studies demonstrates that the new approach not only can truncate the Volterra series expansion and estimate the kernels of a weakly nonlinear system, but also can indicate the applicability of the Volterra series analysis in a severely nonlinear system case.
机译:Volterra级数模型是线性卷积积分的直接概括,并且能够以简单易用的方式显示非线性系统的内在特征。使用Volterra级数的非线性系统分析通常基于其频域内核的分析和简短的描述。但是Volterra核的估计和Volterra级数的截断是相互关联的。本文提出了一种新颖的复数值正交最小二乘算法。新算法提供了一个强大的工具,可确定哪些项应包含在Volterra级数展开中并估算内核,从而共同解决这两个问题。将估计的结果与使用内核的解析表达式确定的结果进行比较,以验证该方法。为了进一步评估该方法的有效性,还从测量的内核中提取了系统的物理参数。仿真研究表明,该新方法不仅可以截断Volterra级数展开并估计弱非线性系统的核,而且可以表明Volterra级数分析在严重非线性系统情况下的适用性。

著录项

  • 作者

    Zhang B.; Billings S.A.;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 en
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